Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.
Biosens Bioelectron. 2011 Jan 15;26(5):2699-702. doi: 10.1016/j.bios.2010.08.073. Epub 2010 Sep 9.
We report here a novel approach to monitor the DNA polymerase fidelity in detailed steps, including mispair extension, mispair formation and 3'→5' proofreading. The method is based on the photo-induced electron transfer between the natural base guanine and the labeled fluorophore. The G:T mispair extension catalyzed by the exonuclease-deficient Klenow fragment DNA polymerase (KF exo(-)) was easily detected and the effect of the nearest neighbor base pair on the mispair extension rate was clearly observed. More importantly, kinetics of the G:T, G:A and G:G mispair formation and extension under single turnover conditions were measured by continuous fluorescence-based assay for the first time. The probes also showed their applicability to discriminate the 3'→5' proofreading activity of different exonuclease-proficient DNA polymerases. The presented method may greatly simplify the screening and characterization procedures of the increasing number of polymerases that are thought to be potential targets for drug design and cancer treatment. It will also provide important information for deep understanding of the polymerase fidelity mechanism.
我们在这里报告了一种新方法,可以详细监测 DNA 聚合酶的保真度,包括错配延伸、错配形成和 3'→5'校对。该方法基于天然碱基鸟嘌呤和标记荧光团之间的光诱导电子转移。外切酶缺陷型 Klenow 片段 DNA 聚合酶(KF exo(-))催化的 G:T 错配延伸很容易被检测到,并且清楚地观察到最近邻碱基对对错配延伸率的影响。更重要的是,首次通过连续荧光测定法测量了单轮条件下 G:T、G:A 和 G:G 错配形成和延伸的动力学。这些探针还可用于区分不同具有外切酶活性的 DNA 聚合酶的 3'→5'校对活性。该方法可能极大地简化了越来越多聚合酶的筛选和表征程序,这些聚合酶被认为是药物设计和癌症治疗的潜在靶标。它还将为深入了解聚合酶保真度机制提供重要信息。